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PMID: 17151666 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Climate-driven trends in contemporary ocean productivity.

Nature ·Vol. 444 ·No. 7120 ·2006-12-07 ·Pages 752-5

Behrenfeld MJ, O'Malley RT, Siegel DA, McClain CR, Sarmiento JL, Feldman GC, Milligan AJ, Falkowski PG, Letelier RM, Boss ES

Abstract

Contributing roughly half of the biosphere's net primary production (NPP), photosynthesis by oceanic phytoplankton is a vital link in the cycling of carbon between living and inorganic stocks. Each day, more than a hundred million tons of carbon in the form of CO2 are fixed into organic material by these ubiquitous, microscopic plants of the upper ocean, and each day a similar amount of organic carbon is transferred into marine ecosystems by sinking and grazing. The distribution of phytoplankton biomass and NPP is defined by the availability of light and nutrients (nitrogen, phosphate, iron). These growth-limiting factors are in turn regulated by physical processes of ocean circulation, mixed-layer dynamics, upwelling, atmospheric dust deposition, and the solar cycle. Satellite measurements of ocean colour provide a means of quantifying ocean productivity on a global scale and linking its variability to environmental factors. Here we describe global ocean NPP changes detected from space over the past decade. The period is dominated by an initial increase in NPP of 1,930 teragrams of carbon a year (Tg C yr(-1)), followed by a prolonged decrease averaging 190 Tg C yr(-1). These trends are driven by changes occurring in the expansive stratified low-latitude oceans and are tightly coupled to coincident climate variability. This link between the physical environment and ocean biology functions through changes in upper-ocean temperature and stratification, which influence the availability of nutrients for phytoplankton growth. The observed reductions in ocean productivity during the recent post-1999 warming period provide insight on how future climate change can alter marine food webs.

MeSH Terms
Animals Biomass Carbon Dioxide/metabolism Chlorophyll/metabolism Climate Ecosystem Food Chain Greenhouse Effect Hot Temperature Oceans and Seas Photosynthesis Phytoplankton/metabolism Seawater/chemistry
Chemicals
Chlorophyll Carbon Dioxide
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Behrenfeld Michael J
Department of Botany and Plant Pathology, Oregon State University, Corvallis, Oregon 97331, USA. [email protected]
O'Malley Robert T
Siegel David A
McClain Charles R
Sarmiento Jorge L
Feldman Gene C
Milligan Allen J
Falkowski Paul G
Letelier Ricardo M
Boss Emmanuel S
Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2006-12-07
Pages
752-5
Language
English
Region
England
NLM ID
0410462
Subset
IM
Corrections
CommentIn
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